US7770929B2 - Vehicular seatbelt restraint with selectively disabled inertia reel assembly - Google Patents
Vehicular seatbelt restraint with selectively disabled inertia reel assembly Download PDFInfo
- Publication number
- US7770929B2 US7770929B2 US12/107,515 US10751508A US7770929B2 US 7770929 B2 US7770929 B2 US 7770929B2 US 10751508 A US10751508 A US 10751508A US 7770929 B2 US7770929 B2 US 7770929B2
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- United States
- Prior art keywords
- seatbelt
- assembly
- signal
- restraint system
- actuator
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60R—VEHICLES, VEHICLE FITTINGS, OR VEHICLE PARTS, NOT OTHERWISE PROVIDED FOR
- B60R22/00—Safety belts or body harnesses in vehicles
- B60R22/34—Belt retractors, e.g. reels
- B60R22/36—Belt retractors, e.g. reels self-locking in an emergency
- B60R22/41—Belt retractors, e.g. reels self-locking in an emergency with additional means for preventing locking during unwinding under predetermined conditions
Definitions
- the present disclosure relates generally to vehicular seatbelt restraint systems and more particularly to inertia reel assemblies for vehicular seatbelt restraint systems.
- Vehicular seatbelt restraint systems often make use of an inertia reel assembly that locks to prevent additional seatbelt webbing from being fed out in response to an abrupt pull on the seatbelt webbing or in response to the acceleration of a pendulum mechanism (e.g., when the vehicle is decelerating rapidly).
- This prevention of the extension of the seatbelt typically can help to reduce the likelihood of injury to the occupant.
- an occupant may have temporarily unlatched the seatbelt or not yet have latched the seatbelt while the vehicle is in motion.
- the locking mechanism of the inertia reel assembly can be engaged, thereby preventing the occupant from latching the seatbelt until the inertia event falls below the locking threshold or once tension no longer is being applied to the seatbelt webbing. There is then the possibility that the vehicle could be involved in an accident while the seatbelt is not properly latched, placing the occupant at risk of grave injury.
- FIG. 1 is a diagram illustrating a vehicle with a seatbelt restraint system having an inertia reel assembly with a selectively disabled locking mechanism based on a latch status of a seatbelt in accordance with at least one embodiment of the present disclosure.
- FIG. 2 is a flow diagram illustrating an example method for selectively disabling a locking mechanism of the inertia reel assembly of the vehicular seatbelt restraint system of FIG. 1 based on the latch status of the seatbelt in accordance with at least one embodiment of the present disclosure.
- FIG. 3 is a diagram illustrating a side view of a locking mechanism of the inertia reel assembly of the seatbelt restraint system of FIG. 1 and an actuator for manipulating the locking mechanism in accordance with at least one embodiment of the present disclosure.
- FIG. 4 is a diagram illustrating an example implementation of the actuator and the locking mechanism of the inertia reel assembly of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- FIG. 5 is a diagram illustrating another example implementation of the actuator and the locking mechanism of the inertia reel assembly of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- FIG. 6 is a diagram illustrating another example implementation of the actuator and the locking mechanism of the inertia reel assembly of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- FIG. 7 is a diagram illustrating yet another example implementation of the actuator and the locking mechanism of the inertia reel assembly of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- FIGS. 1-7 illustrate example techniques for selectively disabling a locking mechanism of an inertia reel assembly of a vehicular seatbelt restraint system based on a latch status of a seatbelt of the seatbelt restraint system.
- a sensor at a latch assembly determines whether a seatbelt buckle is engaged with the latch assembly and provides an output signal based on this determination.
- a controller receives the output signal and selectively drives an actuator based on the output signal so as to enable or disable the locking mechanism of the inertia reel mechanism.
- FIG. 1 illustrates a vehicle 100 having a restraint system 102 mounted thereto in accordance with at least one embodiment of the present disclosure.
- the vehicle 100 can include any of a variety of vehicles, such as an automobile, a tractor trailer, a bus, a train, a tractor, an airplane, a boat, etc.
- the restraint system 102 includes a seatbelt assembly 103 having an inertia reel assembly 104 , a latch assembly 106 , and an anchor 108 each mounted to the body of the vehicle 100 .
- the seatbelt assembly 103 further includes a seatbelt buckle 110 and seatbelt webbing 112 , whereby the seatbelt webbing 112 is wound around a seatbelt reel (not shown) of the inertia reel assembly 104 , connected to the anchor 108 , and constrained by the seatbelt buckle 108 so as to form a three-point restraint for an occupant in the seat 114 .
- the restraint system 102 can include a four-point restraint, a five-point restraint, etc.
- the inertia reel assembly 104 includes the seatbelt reel and a locking mechanism having an unlocked configuration and a lockable configuration.
- the locking mechanism of the inertia reel assembly 104 is disabled, thereby permitting the seatbelt reel to rotate in two directions (clockwise and counterclockwise) to as to feed out or take in the seatbelt webbing 112 , respectively, regardless of any inertial event (e.g., rapid deceleration of the vehicle 100 or an abrupt pull on the seatbelt webbing 112 ) at the inertia reel assembly 104 .
- an occupant can continue to feed out seatbelt webbing 112 so as to engage the seatbelt buckle 110 with the latch assembly 106 even under rapid deceleration, hard cornering, or when the occupant rapidly jerks on the seatbelt webbing 112 .
- the locking mechanism When in the lockable configuration, the locking mechanism is enabled and therefore can be engaged in response to an inertial event, thereby permitting the seatbelt reel to rotate in only one direction so as to prevent additional seatbelt webbing from being fed out. If the locking mechanism is not engaged when in the lockable configuration, the seatbelt reel is permitted to rotate in both directions, thereby allowing the seatbelt webbing 112 to be fed out from the seatbelt reel in the absence of an inertial event.
- Example implementations of the inertia reel assembly 104 and various example means for manipulating the inertia reel assembly 104 into the unlocked are illustrated in greater detail below with reference to FIGS. 3-7 .
- the restraint system 102 further includes a sensor 116 , a controller 118 , and an actuator 120 .
- the sensor 116 is disposed at or proximal to the latch assembly 106 and is configured to sense whether the seatbelt buckle 110 is engaged with the latch assembly 106 (i.e., determine the “latch state” of the seatbelt buckle 110 ) and to provide an output signal 121 having one of two states based on the latch state of the seatbelt buckle 110 .
- the sensor 116 can include, for example, a conductive path-type sensor whereby the insertion of a metal component of the seatbelt buckle 110 into the latch assembly 106 closes a conductive path, which is sensed by the sensor 116 .
- the sensor 116 alternately can include a pressure-type sensor that is triggered when the seatbelt buckle 110 is inserted into the latch assembly 106 , a capacitive-type sensor that senses a change in capacitance due to the introduction of the seatbelt buckle 110 into the latch assembly 106 , an optical sensor that detects the presence of the seatbelt buckle 110 in the latch assembly 106 based on the blockage of light emitted from a light-emitting diode (LED) or other light source, etc.
- LED light-emitting diode
- Non-limiting example implementations of the sensor 116 can be found in U.S. Pat. Nos. 4,747,616; 4,849,733; 5,672,916; 5,960,523; 6,079,744; and 7,296,825.
- the controller 118 includes an input to receive the signal 121 output by the sensor 116 and an output to provide a signal 122 to the actuator 120 so as to manipulate the actuator 120 based on the state of the signal 121 via the signal 122 .
- the controller drives the signal 122 to either a first state (e.g., logic 1, X volts, digital value A) or a second state (e.g., logic 0, Y volts, digital value B) (or vice versa) based on whether the state of the signal 121 indicates the seatbelt buckle 110 is latched as illustrated by the relationship:
- the controller 118 can be implemented in any of a variety of manners.
- the controller 118 is implemented as part of an electronic control unit (ECU) of the vehicle 100 , whereby the functions of the controller 118 can be implemented as instructions stored in a memory of the ECU and executed by processing unit of the ECU so as to achieve the described functions.
- the controller 118 can be implemented as hardware logic or a hardware state machine of the ECU (or as a separate component) that is configured to achieve the above-described relationship between the signal 121 and the signal 122 .
- the controller 118 can be implemented as an amplifier or signal driver that amplifies the signal 121 to generate the signal 122 so as to source sufficient power to the actuator 120 via the signal 122 so as to drive the actuator 120 in the intended manner.
- the signal 122 can be used to control a power switch (e.g., a power transistor) that sources sufficient power to the actuator 120 when enabled to drive the actuator 120 in the intended manner.
- the restraint system 102 can be implemented without the controller 118 , whereby the signal 121 output by the sensor 116 serves as the signal 122 input to the actuator 120 .
- the actuator 120 is configured to manipulate the inertia reel assembly 104 so as to place the inertia reel assembly 104 in the unlocked configuration or otherwise disable the locking mechanism of the inertia reel assembly 104 when the signal 122 is in the second state (i.e., when the seatbelt buckle 110 is disengaged from the latch assembly 106 ). Conversely, the actuator 120 is configured to place the inertia reel assembly 104 in the lockable configuration or otherwise enable the locking mechanism of the inertia reel assembly 104 when the signal 122 is in the first state (i.e., when the seatbelt buckle 110 is engaged with the latch assembly 106 ).
- the actuator 120 enables or disables the locking mechanism of the inertia reel assembly 104 based on the latch state of the seatbelt buckle 110 . Accordingly, in this configuration, an occupant will remain able to feed out sufficient seatbelt webbing 112 to engage the seatbelt buckle 110 with the latch assembly 106 even when an inertial event, such as vehicle deceleration or an abrupt jerk on the seatbelt webbing 112 , is present, while allowing the inertia reel mechanism 104 to lock in response to an inertial event when the seatbelt buckle 110 is engaged with the latch assembly 106 .
- an inertial event such as vehicle deceleration or an abrupt jerk on the seatbelt webbing 112
- FIG. 2 illustrates a method 200 of operation of the restraint system 102 of the vehicle 100 of FIG. 1 in accordance with at least one embodiment of the present disclosure.
- the vehicle 100 is powered on, thereby powering on the electronic components of the vehicle 100 , including the sensor 116 and the controller 118 .
- controller 118 determines whether the seatbelt buckle 110 is engaged with the latch assembly 106 based on the state of the signal 121 output by the sensor 116 .
- the controller 118 configures the signal 122 to the first state, which in turn manipulates the actuator 120 so as to configure the inertia reel assembly 104 into the lockable state by enabling the locking mechanism of the inertia reel assembly 104 . Otherwise, if the seatbelt buckle 110 is disengaged from the latch assembly 106 , the controller 118 configures the signal 122 to the second state, which in turn manipulates the actuator 120 so as to configure the inertia reel assembly 104 into the unlocked state by disabling the locking mechanism of the inertia reel assembly 104 . In either case, the flow of method 200 returns to block 204 whereby the controller 118 monitors for a change in the latch state of the seatbelt buckle 110 via the sensor 116 and proceeds again to either block 204 or 206 accordingly.
- FIG. 3 illustrates an example implementation of the actuator 120 and the inertia reel assembly 104 in accordance with at least one embodiment of the present disclosure.
- the inertia reel assembly 104 includes a seatbelt reel 302 having a drum 304 around which the seatbelt webbing 112 is wound.
- the drum 304 can be rotated around an axel 206 in either direction 308 (to feed out seatbelt webbing 112 ) or direction 310 (to draw in seatbelt webbing 112 ).
- the inertia reel assembly 104 further includes a locking mechanism 312 .
- the locking mechanism 312 in one embodiment, includes a ratchet wheel 314 affixed to the seatbelt reel 302 and a pawl 314 that can be maneuvered into either an engaged position 318 or a disengaged position 320 (e.g., via rotation about an axel 322 or by shifting the entire pawl 314 toward or away from the teeth of the ratchet wheel 314 ).
- the ratchet wheel 314 can be moved toward or away from the pawl 314 via a cam or other mechanism so as to achieve the engaged position 318 or the disengaged position 320 , respectively.
- the pawl 316 While in the disengaged position 320 , the pawl 316 permits the ratchet wheel 314 , and thus the seatbelt reel 302 , to rotate in either direction 308 or direction 310 . However, while in the engaged position 318 , the pawl 312 permits the ratchet wheel 314 to rotate in the direction 310 but prevents rotation of the ratchet wheel 314 in the direction 308 , and thus prevents the seatbelt reel 302 from rotating in the direction 308 so as to allow more seatbelt webbing 112 to be fed out.
- the locking mechanism 312 further includes an inertial engagement mechanism 324 to manipulate the pawl 316 into the engaged position 318 in response to an inertial event such as an abrupt pull on the seatbelt webbing 112 or the deceleration or cornering of the vehicle 110 .
- the inertial engagement mechanism 324 can include any of a variety of inertial engagement mechanisms known in the art, non-limiting examples of which are described in U.S. Pat. Nos. 2,953,315; 3,632,056; 3,666,198; 4,244,600, and 5,794,878.
- FIG. 3 illustrates an example implementation of the locking mechanism 312 as a pawl and ratchet wheel
- other locking mechanisms for preventing feed out of seatbelt webbing 112 can be implemented without departing from the scope of the present disclosure.
- a clamp-type locking mechanism such as the one described in U.S. Pat. No. 7,036,849, can be implemented as the locking mechanism 312 of the inertia reel assembly 104 .
- the actuator 120 is configured to manipulate the locking mechanism 312 so as to disable the locking mechanism 312 in response to the signal 122 indicating the seatbelt buckle 310 is latched and to enable the locking mechanism 312 in response to the signal 122 indicating the seatbelt buckle 310 is unlatched.
- the actuator 120 disables the locking mechanism 312 by positioning the pawl 316 into disengaged position 320 and preventing its repositioning into the engaged position 318 by the inertial engagement mechanism 324 .
- the actuator 120 enables the locking mechanism 312 by manipulating the locking mechanism 312 to permit the pawl 316 to be freely moved between the engaged position 318 and the disengaged position 320 by the inertial engagement mechanism 324 based on the inertial state of the inertia reel assembly 104 .
- FIG. 4 illustrates an example implementation of the actuator 120 with respect to the example locking mechanism 312 of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- the pawl 316 is fabricated with ferrous metal or includes a ferrous metal component and the actuator 120 is implemented as a driver 120 and an electromagnet 204 .
- the driver 402 energizes the electromagnet 404 , which magnetically draws the pawl 316 into the disengaged position 320 and maintains the pawl 316 in the disengaged position 320 while energized, thus preventing the pawl 316 from engaging the teeth of the ratchet wheel 314 .
- the force of the electromagnet 304 on the pawl 316 is greater than the force exertable by the inertial engagement mechanism 324 so that the actuator 120 can override the inertial engagement mechanism 324 during an inertial event.
- the driver 402 ceases energizing the electromagnet 404 , thereby permitting the inertial engagement mechanism 324 to move the pawl 316 freely between the engaged position 318 and the disengaged position 320 responsive to the inertial state of the inertia reel assembly 104 .
- FIG. 5 illustrates another example implementation of the actuator 120 with respect to the example locking mechanism 312 of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- the actuator 120 is implemented as an electric motor 502 having a rotor connected to the pawl 316 (e.g., directly to the axel 322 of the pawl 316 , via one or more gears, etc.).
- the rotor of the electric motor 502 rotates so as to move the pawl 316 into the disengaged position 320 and maintain the pawl 316 in the disengaged position 320 so as to prevent the pawl 316 from engaging the teeth of the ratchet wheel 314 .
- a stop 504 may be implemented to prevent the electronic motor 502 from rotating the pawl 316 beyond the disengaged position 320 .
- the force of the electric motor 502 on the pawl 316 is greater than the force exertable by the inertial engagement mechanism 324 (not shown in FIG. 5 ) so that the actuator 120 can override the inertial engagement mechanism 324 .
- the signal 122 indicates the seatbelt is latched
- the electric motor 502 ceases to drive the rotor and the rotor thus can be freely rotated, thereby permitting the inertial engagement mechanism 324 to move the pawl 316 between the engaged position 318 and the disengaged position 320 responsive to the inertial state of the inertia reel assembly 104 .
- FIG. 6 illustrates another example implementation of the actuator 120 with respect to the example locking mechanism 312 of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- the actuator 120 is implemented as a solenoid 602 having an extendable armature 604 that non-fixedly engages the pawl 316 (e.g., via a pin 606 fixed to the pawl 316 ).
- armature 604 of the solenoid 602 remains unextended (having length L 1 ), thereby permitting the inertial engagement mechanism 324 to move the pawl 316 between the engaged position 318 and the disengaged position 320 responsive to the inertial state of the inertia reel assembly 104 .
- the solenoid 602 extends the armature 604 to a length L 2 (>L 1 ), thereby moving the pawl 316 into the disengaged position 320 and maintaining the pawl 316 in the disengaged position 320 so as to prevent the pawl 316 from engaging the teeth of the ratchet wheel 314 .
- the force exerted by the solenoid 602 on the pawl 316 via the armature 604 is greater than the force exertable by the inertial engagement mechanism 324 (not shown in FIG. 6 ) so that the actuator 120 can override the inertial engagement mechanism 324 during an inertial event.
- FIG. 7 illustrates yet another example implementation of the actuator 120 with respect to the example locking mechanism 312 of FIG. 3 in accordance with at least one embodiment of the present disclosure.
- the pawl 316 includes a notch 701 and the actuator 120 is implemented as a solenoid 702 having an extendable armature 704 that engages the notch 701 of pawl 316 when extended.
- the solenoid 702 extends the armature 704 to a length L 1 such that the armature 704 engages with the notch 701 while the pawl 316 is in the disengaged position 320 , thereby maintaining the pawl 316 in the disengaged position 320 so as to prevent the pawl 316 from engaging the teeth of the ratchet wheel 314 .
- the armature 704 of the solenoid 702 retracts to a length L 2 ( ⁇ L 1 ) so as to disengage from the notch 701 , thereby permitting the inertial engagement mechanism 324 (not shown in FIG. 7 ) to move the pawl 316 between the engaged position 318 and the disengaged position 320 responsive to the inertial state of the inertia reel assembly 104 .
- FIGS. 4-7 illustrate various example implementations of the locking mechanism 312 and the actuator 120 , it will be appreciated that the locking mechanism 312 and the actuator 120 can be implemented in any of a variety of manners using the guidelines provided herein without departing from the scope of the present disclosure.
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Abstract
Description
- IF
SIGNAL 121=LATCHED THENSIGNAL 121=FIRST STATE - IF
SIGNAL 121=UNLATCHED THENSIGNAL 121=SECOND STATE
Claims (16)
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US12/107,515 US7770929B2 (en) | 2008-04-22 | 2008-04-22 | Vehicular seatbelt restraint with selectively disabled inertia reel assembly |
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US12/107,515 US7770929B2 (en) | 2008-04-22 | 2008-04-22 | Vehicular seatbelt restraint with selectively disabled inertia reel assembly |
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US7770929B2 true US7770929B2 (en) | 2010-08-10 |
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Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20100207444A1 (en) * | 2009-02-13 | 2010-08-19 | Honda Motor Co., Ltd. | Vehicular seatbelt device |
US20190217814A1 (en) * | 2018-01-15 | 2019-07-18 | Ford Global Technologies, Llc | Seatbelt retractor assembly |
DE102018124799B4 (en) * | 2017-10-09 | 2021-02-11 | GM Global Technology Operations LLC | SYSTEM AND METHOD FOR RELEASING A LOCKING RETRACTOR TO ALLOW A SEAT BELT PULL-OUT FROM THE RETRACTOR AND GENERATING A MESSAGE INDICATING THAT A LOCKING MECHANISM IS IN THE RETRACTOR |
Families Citing this family (3)
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US8325053B2 (en) * | 2009-03-10 | 2012-12-04 | JCJ Inc. | Personal fall protection monitoring system |
US10752360B2 (en) | 2017-12-05 | 2020-08-25 | Textron Innovations Inc. | Aircraft restraint systems with fixed default mode |
US10710725B2 (en) | 2017-12-05 | 2020-07-14 | Textron Innovations Inc. | Aircraft restraint systems with unfixed default mode |
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Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20100207444A1 (en) * | 2009-02-13 | 2010-08-19 | Honda Motor Co., Ltd. | Vehicular seatbelt device |
US7942448B2 (en) * | 2009-02-13 | 2011-05-17 | Honda Motor Co., Ltd. | Vehicular seatbelt device |
DE102018124799B4 (en) * | 2017-10-09 | 2021-02-11 | GM Global Technology Operations LLC | SYSTEM AND METHOD FOR RELEASING A LOCKING RETRACTOR TO ALLOW A SEAT BELT PULL-OUT FROM THE RETRACTOR AND GENERATING A MESSAGE INDICATING THAT A LOCKING MECHANISM IS IN THE RETRACTOR |
US20190217814A1 (en) * | 2018-01-15 | 2019-07-18 | Ford Global Technologies, Llc | Seatbelt retractor assembly |
US10906504B2 (en) | 2018-01-15 | 2021-02-02 | Ford Global Technologies, Llc | Seatbelt retractor assembly |
US12043208B2 (en) | 2018-01-15 | 2024-07-23 | Ford Global Technologies, Llc | Seatbelt retractor assembly |
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US20090261568A1 (en) | 2009-10-22 |
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